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fpu_emu.c revision 1.41
      1  1.41      rin /*	$NetBSD: fpu_emu.c,v 1.41 2022/08/30 10:55:06 rin Exp $ */
      2   1.1   simonb 
      3   1.1   simonb /*
      4   1.1   simonb  * Copyright 2001 Wasabi Systems, Inc.
      5   1.1   simonb  * All rights reserved.
      6   1.1   simonb  *
      7   1.1   simonb  * Written by Eduardo Horvath and Simon Burge for Wasabi Systems, Inc.
      8   1.1   simonb  *
      9   1.1   simonb  * Redistribution and use in source and binary forms, with or without
     10   1.1   simonb  * modification, are permitted provided that the following conditions
     11   1.1   simonb  * are met:
     12   1.1   simonb  * 1. Redistributions of source code must retain the above copyright
     13   1.1   simonb  *    notice, this list of conditions and the following disclaimer.
     14   1.1   simonb  * 2. Redistributions in binary form must reproduce the above copyright
     15   1.1   simonb  *    notice, this list of conditions and the following disclaimer in the
     16   1.1   simonb  *    documentation and/or other materials provided with the distribution.
     17   1.1   simonb  * 3. All advertising materials mentioning features or use of this software
     18   1.1   simonb  *    must display the following acknowledgement:
     19   1.1   simonb  *      This product includes software developed for the NetBSD Project by
     20   1.1   simonb  *      Wasabi Systems, Inc.
     21   1.1   simonb  * 4. The name of Wasabi Systems, Inc. may not be used to endorse
     22   1.1   simonb  *    or promote products derived from this software without specific prior
     23   1.1   simonb  *    written permission.
     24   1.1   simonb  *
     25   1.1   simonb  * THIS SOFTWARE IS PROVIDED BY WASABI SYSTEMS, INC. ``AS IS'' AND
     26   1.1   simonb  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     27   1.1   simonb  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     28   1.1   simonb  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL WASABI SYSTEMS, INC
     29   1.1   simonb  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     30   1.1   simonb  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     31   1.1   simonb  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     32   1.1   simonb  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     33   1.1   simonb  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     34   1.1   simonb  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     35   1.1   simonb  * POSSIBILITY OF SUCH DAMAGE.
     36   1.1   simonb  */
     37   1.1   simonb 
     38   1.1   simonb /*
     39   1.1   simonb  * Copyright (c) 1992, 1993
     40   1.1   simonb  *	The Regents of the University of California.  All rights reserved.
     41   1.1   simonb  *
     42   1.1   simonb  * This software was developed by the Computer Systems Engineering group
     43   1.1   simonb  * at Lawrence Berkeley Laboratory under DARPA contract BG 91-66 and
     44   1.1   simonb  * contributed to Berkeley.
     45   1.1   simonb  *
     46   1.1   simonb  * All advertising materials mentioning features or use of this software
     47   1.1   simonb  * must display the following acknowledgement:
     48   1.1   simonb  *	This product includes software developed by the University of
     49   1.1   simonb  *	California, Lawrence Berkeley Laboratory.
     50   1.1   simonb  *
     51   1.1   simonb  * Redistribution and use in source and binary forms, with or without
     52   1.1   simonb  * modification, are permitted provided that the following conditions
     53   1.1   simonb  * are met:
     54   1.1   simonb  * 1. Redistributions of source code must retain the above copyright
     55   1.1   simonb  *    notice, this list of conditions and the following disclaimer.
     56   1.1   simonb  * 2. Redistributions in binary form must reproduce the above copyright
     57   1.1   simonb  *    notice, this list of conditions and the following disclaimer in the
     58   1.1   simonb  *    documentation and/or other materials provided with the distribution.
     59   1.9      agc  * 3. Neither the name of the University nor the names of its contributors
     60   1.1   simonb  *    may be used to endorse or promote products derived from this software
     61   1.1   simonb  *    without specific prior written permission.
     62   1.1   simonb  *
     63   1.1   simonb  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     64   1.1   simonb  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     65   1.1   simonb  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     66   1.1   simonb  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     67   1.1   simonb  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     68   1.1   simonb  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     69   1.1   simonb  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     70   1.1   simonb  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     71   1.1   simonb  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     72   1.1   simonb  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     73   1.1   simonb  * SUCH DAMAGE.
     74   1.1   simonb  *
     75   1.1   simonb  *	@(#)fpu.c	8.1 (Berkeley) 6/11/93
     76   1.1   simonb  */
     77   1.8    lukem 
     78   1.8    lukem #include <sys/cdefs.h>
     79  1.41      rin __KERNEL_RCSID(0, "$NetBSD: fpu_emu.c,v 1.41 2022/08/30 10:55:06 rin Exp $");
     80   1.1   simonb 
     81  1.23      rin #ifdef _KERNEL_OPT
     82   1.1   simonb #include "opt_ddb.h"
     83  1.23      rin #endif
     84   1.1   simonb 
     85   1.1   simonb #include <sys/param.h>
     86  1.20      rin #include <sys/systm.h>
     87  1.20      rin #include <sys/evcnt.h>
     88   1.1   simonb #include <sys/proc.h>
     89  1.20      rin #include <sys/siginfo.h>
     90   1.1   simonb #include <sys/signal.h>
     91  1.16     matt #include <sys/signalvar.h>
     92   1.1   simonb #include <sys/syslog.h>
     93   1.1   simonb 
     94   1.1   simonb #include <powerpc/instr.h>
     95  1.30      rin #include <powerpc/psl.h>
     96  1.30      rin 
     97  1.20      rin #include <machine/fpu.h>
     98   1.1   simonb #include <machine/reg.h>
     99  1.16     matt #include <machine/trap.h>
    100   1.1   simonb 
    101   1.1   simonb #include <powerpc/fpu/fpu_emu.h>
    102   1.1   simonb #include <powerpc/fpu/fpu_extern.h>
    103   1.1   simonb 
    104   1.4  thorpej #define	FPU_EMU_EVCNT_DECL(name)					\
    105   1.4  thorpej static struct evcnt fpu_emu_ev_##name =					\
    106   1.4  thorpej     EVCNT_INITIALIZER(EVCNT_TYPE_TRAP, NULL, "fpemu", #name);		\
    107   1.4  thorpej EVCNT_ATTACH_STATIC(fpu_emu_ev_##name)
    108   1.4  thorpej 
    109   1.4  thorpej #define	FPU_EMU_EVCNT_INCR(name)					\
    110   1.5  thorpej     fpu_emu_ev_##name.ev_count++
    111   1.4  thorpej 
    112   1.4  thorpej FPU_EMU_EVCNT_DECL(stfiwx);
    113   1.4  thorpej FPU_EMU_EVCNT_DECL(fpstore);
    114   1.4  thorpej FPU_EMU_EVCNT_DECL(fpload);
    115   1.4  thorpej FPU_EMU_EVCNT_DECL(fcmpu);
    116   1.4  thorpej FPU_EMU_EVCNT_DECL(frsp);
    117   1.4  thorpej FPU_EMU_EVCNT_DECL(fctiw);
    118   1.4  thorpej FPU_EMU_EVCNT_DECL(fcmpo);
    119   1.4  thorpej FPU_EMU_EVCNT_DECL(mtfsb1);
    120   1.4  thorpej FPU_EMU_EVCNT_DECL(fnegabs);
    121   1.4  thorpej FPU_EMU_EVCNT_DECL(mcrfs);
    122   1.4  thorpej FPU_EMU_EVCNT_DECL(mtfsb0);
    123   1.4  thorpej FPU_EMU_EVCNT_DECL(fmr);
    124   1.4  thorpej FPU_EMU_EVCNT_DECL(mtfsfi);
    125   1.4  thorpej FPU_EMU_EVCNT_DECL(fnabs);
    126   1.4  thorpej FPU_EMU_EVCNT_DECL(fabs);
    127   1.4  thorpej FPU_EMU_EVCNT_DECL(mffs);
    128   1.4  thorpej FPU_EMU_EVCNT_DECL(mtfsf);
    129   1.4  thorpej FPU_EMU_EVCNT_DECL(fctid);
    130   1.4  thorpej FPU_EMU_EVCNT_DECL(fcfid);
    131   1.4  thorpej FPU_EMU_EVCNT_DECL(fdiv);
    132   1.4  thorpej FPU_EMU_EVCNT_DECL(fsub);
    133   1.4  thorpej FPU_EMU_EVCNT_DECL(fadd);
    134   1.4  thorpej FPU_EMU_EVCNT_DECL(fsqrt);
    135   1.4  thorpej FPU_EMU_EVCNT_DECL(fsel);
    136   1.4  thorpej FPU_EMU_EVCNT_DECL(fpres);
    137   1.4  thorpej FPU_EMU_EVCNT_DECL(fmul);
    138   1.4  thorpej FPU_EMU_EVCNT_DECL(frsqrte);
    139   1.4  thorpej FPU_EMU_EVCNT_DECL(fmulsub);
    140   1.4  thorpej FPU_EMU_EVCNT_DECL(fmuladd);
    141   1.4  thorpej FPU_EMU_EVCNT_DECL(fnmsub);
    142   1.4  thorpej FPU_EMU_EVCNT_DECL(fnmadd);
    143   1.1   simonb 
    144   1.1   simonb /* FPSR exception masks */
    145   1.1   simonb #define FPSR_EX_MSK	(FPSCR_VX|FPSCR_OX|FPSCR_UX|FPSCR_ZX|		\
    146   1.1   simonb 			FPSCR_XX|FPSCR_VXSNAN|FPSCR_VXISI|FPSCR_VXIDI|	\
    147   1.1   simonb 			FPSCR_VXZDZ|FPSCR_VXIMZ|FPSCR_VXVC|FPSCR_VXSOFT|\
    148   1.1   simonb 			FPSCR_VXSQRT|FPSCR_VXCVI)
    149   1.1   simonb #define	FPSR_EX		(FPSCR_VE|FPSCR_OE|FPSCR_UE|FPSCR_ZE|FPSCR_XE)
    150  1.32      rin #define	FPSR_INV	(FPSCR_VXSNAN|FPSCR_VXISI|FPSCR_VXIDI|		\
    151  1.32      rin 			FPSCR_VXZDZ|FPSCR_VXIMZ|FPSCR_VXVC|FPSCR_VXSOFT|\
    152  1.32      rin 			FPSCR_VXSQRT|FPSCR_VXCVI)
    153  1.41      rin #define	MCRFS_MASK							\
    154  1.41      rin     (									\
    155  1.41      rin 	FPSCR_FX     | FPSCR_OX     |					\
    156  1.41      rin 	FPSCR_UX     | FPSCR_ZX     | FPSCR_XX    | FPSCR_VXSNAN |	\
    157  1.41      rin 	FPSCR_VXISI  | FPSCR_VXIDI  | FPSCR_VXZDZ | FPSCR_VXIMZ  |	\
    158  1.41      rin 	FPSCR_VXVC   |							\
    159  1.41      rin 	FPSCR_VXSOFT | FPSCR_VXSQRT | FPSCR_VXCVI			\
    160  1.41      rin     )
    161   1.1   simonb 
    162   1.1   simonb 
    163   1.1   simonb int fpe_debug = 0;
    164   1.1   simonb 
    165   1.1   simonb #ifdef DDB
    166   1.1   simonb extern vaddr_t opc_disasm(vaddr_t loc, int opcode);
    167   1.1   simonb #endif
    168   1.1   simonb 
    169   1.1   simonb #ifdef DEBUG
    170   1.1   simonb /*
    171   1.1   simonb  * Dump a `fpn' structure.
    172   1.1   simonb  */
    173   1.1   simonb void
    174   1.1   simonb fpu_dumpfpn(struct fpn *fp)
    175   1.1   simonb {
    176  1.13      scw 	static const char *class[] = {
    177   1.1   simonb 		"SNAN", "QNAN", "ZERO", "NUM", "INF"
    178   1.1   simonb 	};
    179   1.1   simonb 
    180  1.22      rin 	KASSERT(fp != NULL);
    181  1.22      rin 
    182  1.21      rin 	printf("%s %c.%x %x %x %xE%d\n", class[fp->fp_class + 2],
    183   1.1   simonb 		fp->fp_sign ? '-' : ' ',
    184   1.1   simonb 		fp->fp_mant[0],	fp->fp_mant[1],
    185   1.1   simonb 		fp->fp_mant[2], fp->fp_mant[3],
    186   1.1   simonb 		fp->fp_exp);
    187   1.1   simonb }
    188   1.1   simonb #endif
    189   1.1   simonb 
    190   1.1   simonb /*
    191   1.1   simonb  * fpu_execute returns the following error numbers (0 = no error):
    192   1.1   simonb  */
    193   1.1   simonb #define	FPE		1	/* take a floating point exception */
    194   1.1   simonb #define	NOTFPU		2	/* not an FPU instruction */
    195   1.1   simonb #define	FAULT		3
    196   1.1   simonb 
    197   1.1   simonb 
    198   1.1   simonb /*
    199   1.1   simonb  * Emulate a floating-point instruction.
    200  1.36      rin  * Return true if insn is consumed anyway.
    201  1.36      rin  * Otherwise, the caller must take care of it.
    202   1.1   simonb  */
    203  1.16     matt bool
    204  1.16     matt fpu_emulate(struct trapframe *tf, struct fpreg *fpf, ksiginfo_t *ksi)
    205   1.1   simonb {
    206  1.30      rin 	struct pcb *pcb;
    207  1.16     matt 	union instr insn;
    208  1.16     matt 	struct fpemu fe;
    209  1.16     matt 
    210  1.16     matt 	KSI_INIT_TRAP(ksi);
    211  1.16     matt 	ksi->ksi_signo = 0;
    212  1.16     matt 	ksi->ksi_addr = (void *)tf->tf_srr0;
    213   1.1   simonb 
    214   1.1   simonb 	/* initialize insn.is_datasize to tell it is *not* initialized */
    215   1.1   simonb 	fe.fe_fpstate = fpf;
    216   1.1   simonb 	fe.fe_cx = 0;
    217   1.1   simonb 
    218   1.1   simonb 	/* always set this (to avoid a warning) */
    219   1.1   simonb 
    220  1.15     matt 	if (copyin((void *) (tf->tf_srr0), &insn.i_int, sizeof (insn.i_int))) {
    221   1.1   simonb #ifdef DEBUG
    222   1.1   simonb 		printf("fpu_emulate: fault reading opcode\n");
    223   1.1   simonb #endif
    224  1.16     matt 		ksi->ksi_signo = SIGSEGV;
    225  1.16     matt 		ksi->ksi_trap = EXC_ISI;
    226  1.16     matt 		ksi->ksi_code = SEGV_MAPERR;
    227  1.16     matt 		return true;
    228   1.1   simonb 	}
    229   1.1   simonb 
    230   1.1   simonb 	DPRINTF(FPE_EX, ("fpu_emulate: emulating insn %x at %p\n",
    231  1.15     matt 	    insn.i_int, (void *)tf->tf_srr0));
    232   1.1   simonb 
    233   1.1   simonb 	if ((insn.i_any.i_opcd == OPC_TWI) ||
    234   1.1   simonb 	    ((insn.i_any.i_opcd == OPC_integer_31) &&
    235   1.1   simonb 	    (insn.i_x.i_xo == OPC31_TW))) {
    236   1.1   simonb 		/* Check for the two trap insns. */
    237   1.1   simonb 		DPRINTF(FPE_EX, ("fpu_emulate: SIGTRAP\n"));
    238  1.16     matt 		ksi->ksi_signo = SIGTRAP;
    239  1.16     matt 		ksi->ksi_trap = EXC_PGM;
    240  1.27      rin 		ksi->ksi_code = TRAP_BRKPT;
    241  1.16     matt 		return true;
    242   1.1   simonb 	}
    243  1.15     matt 	switch (fpu_execute(tf, &fe, &insn)) {
    244   1.1   simonb 	case 0:
    245  1.30      rin success:
    246   1.1   simonb 		DPRINTF(FPE_EX, ("fpu_emulate: success\n"));
    247  1.15     matt 		tf->tf_srr0 += 4;
    248  1.16     matt 		return true;
    249   1.1   simonb 
    250   1.1   simonb 	case FPE:
    251  1.30      rin 		pcb = lwp_getpcb(curlwp);
    252  1.30      rin 		if ((pcb->pcb_flags & PSL_FE_PREC) == 0)
    253  1.30      rin 			goto success;
    254   1.1   simonb 		DPRINTF(FPE_EX, ("fpu_emulate: SIGFPE\n"));
    255  1.16     matt 		ksi->ksi_signo = SIGFPE;
    256  1.16     matt 		ksi->ksi_trap = EXC_PGM;
    257  1.31      rin 		ksi->ksi_code = fpu_get_fault_code();
    258  1.16     matt 		return true;
    259   1.1   simonb 
    260   1.1   simonb 	case FAULT:
    261   1.1   simonb 		DPRINTF(FPE_EX, ("fpu_emulate: SIGSEGV\n"));
    262  1.16     matt 		ksi->ksi_signo = SIGSEGV;
    263  1.16     matt 		ksi->ksi_trap = EXC_DSI;
    264  1.16     matt 		ksi->ksi_code = SEGV_MAPERR;
    265  1.16     matt 		ksi->ksi_addr = (void *)fe.fe_addr;
    266  1.16     matt 		return true;
    267   1.1   simonb 
    268   1.1   simonb 	case NOTFPU:
    269   1.1   simonb 	default:
    270   1.1   simonb 		DPRINTF(FPE_EX, ("fpu_emulate: SIGILL\n"));
    271  1.18      rin #if defined(DDB) && defined(DEBUG)
    272   1.1   simonb 		if (fpe_debug & FPE_EX) {
    273   1.1   simonb 			printf("fpu_emulate:  illegal insn %x at %p:",
    274  1.15     matt 			insn.i_int, (void *) (tf->tf_srr0));
    275  1.15     matt 			opc_disasm((vaddr_t)(tf->tf_srr0), insn.i_int);
    276   1.1   simonb 		}
    277   1.2   simonb #endif
    278  1.16     matt 		return false;
    279   1.1   simonb 	}
    280   1.1   simonb }
    281   1.1   simonb 
    282   1.1   simonb /*
    283   1.1   simonb  * Execute an FPU instruction (one that runs entirely in the FPU; not
    284   1.1   simonb  * FBfcc or STF, for instance).  On return, fe->fe_fs->fs_fsr will be
    285   1.1   simonb  * modified to reflect the setting the hardware would have left.
    286   1.1   simonb  *
    287   1.1   simonb  * Note that we do not catch all illegal opcodes, so you can, for instance,
    288   1.1   simonb  * multiply two integers this way.
    289   1.1   simonb  */
    290   1.1   simonb int
    291   1.1   simonb fpu_execute(struct trapframe *tf, struct fpemu *fe, union instr *insn)
    292   1.1   simonb {
    293   1.1   simonb 	struct fpn *fp;
    294   1.1   simonb 	union instr instr = *insn;
    295   1.1   simonb 	int *a;
    296   1.1   simonb 	vaddr_t addr;
    297  1.11   simonb 	int ra, rb, rc, rt, type, mask, fsr, cx, bf, setcr;
    298  1.40      rin 	unsigned int bits, cond;
    299   1.1   simonb 	struct fpreg *fs;
    300  1.40      rin 	int i, mtfsb1 = 0;
    301   1.1   simonb 
    302   1.1   simonb 	/* Setup work. */
    303   1.1   simonb 	fp = NULL;
    304   1.1   simonb 	fs = fe->fe_fpstate;
    305   1.1   simonb 	fe->fe_fpscr = ((int *)&fs->fpscr)[1];
    306   1.1   simonb 
    307   1.1   simonb 	/*
    308   1.1   simonb 	 * On PowerPC all floating point values are stored in registers
    309   1.1   simonb 	 * as doubles, even when used for single precision operations.
    310   1.1   simonb 	 */
    311   1.1   simonb 	type = FTYPE_DBL;
    312   1.1   simonb 	cond = instr.i_any.i_rc;
    313   1.1   simonb 	setcr = 0;
    314  1.10   simonb 	bf = 0;	/* XXX gcc */
    315   1.1   simonb 
    316   1.1   simonb #if defined(DDB) && defined(DEBUG)
    317   1.1   simonb 	if (fpe_debug & FPE_EX) {
    318  1.15     matt 		vaddr_t loc = tf->tf_srr0;
    319   1.1   simonb 
    320   1.1   simonb 		printf("Trying to emulate: %p ", (void *)loc);
    321   1.1   simonb 		opc_disasm(loc, instr.i_int);
    322   1.1   simonb 	}
    323   1.1   simonb #endif
    324   1.1   simonb 
    325   1.1   simonb 	/*
    326   1.1   simonb 	 * `Decode' and execute instruction.
    327   1.1   simonb 	 */
    328   1.1   simonb 
    329   1.1   simonb 	if ((instr.i_any.i_opcd >= OPC_LFS && instr.i_any.i_opcd <= OPC_STFDU) ||
    330   1.1   simonb 	    instr.i_any.i_opcd == OPC_integer_31) {
    331   1.1   simonb 		/*
    332   1.1   simonb 		 * Handle load/store insns:
    333   1.1   simonb 		 *
    334   1.1   simonb 		 * Convert to/from single if needed, calculate addr,
    335   1.1   simonb 		 * and update index reg if needed.
    336   1.1   simonb 		 */
    337  1.17    joerg 		uint64_t buf;
    338   1.1   simonb 		size_t size = sizeof(float);
    339   1.1   simonb 		int store, update;
    340   1.1   simonb 
    341   1.1   simonb 		cond = 0; /* ld/st never set condition codes */
    342   1.1   simonb 
    343   1.1   simonb 
    344   1.1   simonb 		if (instr.i_any.i_opcd == OPC_integer_31) {
    345   1.1   simonb 			if (instr.i_x.i_xo == OPC31_STFIWX) {
    346   1.4  thorpej 				FPU_EMU_EVCNT_INCR(stfiwx);
    347   1.4  thorpej 
    348   1.1   simonb 				/* Store as integer */
    349   1.1   simonb 				ra = instr.i_x.i_ra;
    350   1.1   simonb 				rb = instr.i_x.i_rb;
    351   1.7  thorpej 				DPRINTF(FPE_INSN, ("reg %d has %lx reg %d has %lx\n",
    352  1.15     matt 					ra, tf->tf_fixreg[ra], rb, tf->tf_fixreg[rb]));
    353   1.1   simonb 
    354  1.15     matt 				addr = tf->tf_fixreg[rb];
    355   1.1   simonb 				if (ra != 0)
    356  1.15     matt 					addr += tf->tf_fixreg[ra];
    357   1.1   simonb 				rt = instr.i_x.i_rt;
    358   1.1   simonb 				a = (int *)&fs->fpreg[rt];
    359   1.1   simonb 				DPRINTF(FPE_INSN,
    360   1.1   simonb 					("fpu_execute: Store INT %x at %p\n",
    361   1.1   simonb 						a[1], (void *)addr));
    362  1.16     matt 				if (copyout(&a[1], (void *)addr, sizeof(int))) {
    363  1.16     matt 					fe->fe_addr = addr;
    364   1.1   simonb 					return (FAULT);
    365  1.16     matt 				}
    366   1.1   simonb 				return (0);
    367   1.1   simonb 			}
    368   1.1   simonb 
    369   1.1   simonb 			if ((instr.i_x.i_xo & OPC31_FPMASK) != OPC31_FPOP)
    370   1.1   simonb 				/* Not an indexed FP load/store op */
    371   1.1   simonb 				return (NOTFPU);
    372   1.1   simonb 
    373   1.1   simonb 			store = (instr.i_x.i_xo & 0x80);
    374   1.1   simonb 			if (instr.i_x.i_xo & 0x40)
    375   1.1   simonb 				size = sizeof(double);
    376   1.1   simonb 			else
    377   1.1   simonb 				type = FTYPE_SNG;
    378   1.1   simonb 			update = (instr.i_x.i_xo & 0x20);
    379   1.1   simonb 
    380   1.1   simonb 			/* calculate EA of load/store */
    381   1.1   simonb 			ra = instr.i_x.i_ra;
    382   1.1   simonb 			rb = instr.i_x.i_rb;
    383   1.7  thorpej 			DPRINTF(FPE_INSN, ("reg %d has %lx reg %d has %lx\n",
    384  1.15     matt 				ra, tf->tf_fixreg[ra], rb, tf->tf_fixreg[rb]));
    385  1.15     matt 			addr = tf->tf_fixreg[rb];
    386   1.1   simonb 			if (ra != 0)
    387  1.15     matt 				addr += tf->tf_fixreg[ra];
    388   1.1   simonb 			rt = instr.i_x.i_rt;
    389   1.1   simonb 		} else {
    390   1.1   simonb 			store = instr.i_d.i_opcd & 0x4;
    391   1.1   simonb 			if (instr.i_d.i_opcd & 0x2)
    392   1.1   simonb 				size = sizeof(double);
    393   1.1   simonb 			else
    394   1.1   simonb 				type = FTYPE_SNG;
    395   1.1   simonb 			update = instr.i_d.i_opcd & 0x1;
    396   1.1   simonb 
    397   1.1   simonb 			/* calculate EA of load/store */
    398   1.1   simonb 			ra = instr.i_d.i_ra;
    399   1.1   simonb 			addr = instr.i_d.i_d;
    400   1.7  thorpej 			DPRINTF(FPE_INSN, ("reg %d has %lx displ %lx\n",
    401  1.15     matt 				ra, tf->tf_fixreg[ra], addr));
    402   1.1   simonb 			if (ra != 0)
    403  1.15     matt 				addr += tf->tf_fixreg[ra];
    404   1.1   simonb 			rt = instr.i_d.i_rt;
    405   1.1   simonb 		}
    406   1.1   simonb 
    407   1.1   simonb 		if (update && ra == 0)
    408   1.1   simonb 			return (NOTFPU);
    409   1.1   simonb 
    410   1.1   simonb 		if (store) {
    411   1.1   simonb 			/* Store */
    412   1.4  thorpej 			FPU_EMU_EVCNT_INCR(fpstore);
    413   1.1   simonb 			if (type != FTYPE_DBL) {
    414   1.1   simonb 				DPRINTF(FPE_INSN,
    415   1.1   simonb 					("fpu_execute: Store SNG at %p\n",
    416   1.1   simonb 						(void *)addr));
    417   1.1   simonb 				fpu_explode(fe, fp = &fe->fe_f1, FTYPE_DBL, rt);
    418   1.6  thorpej 				fpu_implode(fe, fp, type, (void *)&buf);
    419  1.16     matt 				if (copyout(&buf, (void *)addr, size)) {
    420  1.16     matt 					fe->fe_addr = addr;
    421   1.1   simonb 					return (FAULT);
    422  1.16     matt 				}
    423   1.1   simonb 			} else {
    424   1.1   simonb 				DPRINTF(FPE_INSN,
    425   1.1   simonb 					("fpu_execute: Store DBL at %p\n",
    426   1.1   simonb 						(void *)addr));
    427  1.16     matt 				if (copyout(&fs->fpreg[rt], (void *)addr, size)) {
    428  1.16     matt 					fe->fe_addr = addr;
    429   1.1   simonb 					return (FAULT);
    430  1.16     matt 				}
    431   1.1   simonb 			}
    432   1.1   simonb 		} else {
    433   1.1   simonb 			/* Load */
    434   1.4  thorpej 			FPU_EMU_EVCNT_INCR(fpload);
    435   1.1   simonb 			DPRINTF(FPE_INSN, ("fpu_execute: Load from %p\n",
    436   1.1   simonb 				(void *)addr));
    437  1.16     matt 			if (copyin((const void *)addr, &fs->fpreg[rt], size)) {
    438  1.16     matt 				fe->fe_addr = addr;
    439   1.1   simonb 				return (FAULT);
    440  1.16     matt 			}
    441   1.1   simonb 			if (type != FTYPE_DBL) {
    442   1.1   simonb 				fpu_explode(fe, fp = &fe->fe_f1, type, rt);
    443   1.1   simonb 				fpu_implode(fe, fp, FTYPE_DBL,
    444   1.1   simonb 					(u_int *)&fs->fpreg[rt]);
    445   1.1   simonb 			}
    446   1.1   simonb 		}
    447   1.1   simonb 		if (update)
    448  1.15     matt 			tf->tf_fixreg[ra] = addr;
    449   1.1   simonb 		/* Complete. */
    450   1.1   simonb 		return (0);
    451   1.1   simonb #ifdef notyet
    452   1.1   simonb 	} else if (instr.i_any.i_opcd == OPC_load_st_62) {
    453   1.1   simonb 		/* These are 64-bit extenstions */
    454   1.1   simonb 		return (NOTFPU);
    455   1.1   simonb #endif
    456   1.1   simonb 	} else if (instr.i_any.i_opcd == OPC_sp_fp_59 ||
    457   1.1   simonb 		instr.i_any.i_opcd == OPC_dp_fp_63) {
    458   1.1   simonb 
    459   1.1   simonb 
    460   1.1   simonb 		if (instr.i_any.i_opcd == OPC_dp_fp_63 &&
    461   1.1   simonb 		    !(instr.i_a.i_xo & OPC63M_MASK)) {
    462   1.1   simonb 			/* Format X */
    463   1.1   simonb 			rt = instr.i_x.i_rt;
    464   1.1   simonb 			ra = instr.i_x.i_ra;
    465   1.1   simonb 			rb = instr.i_x.i_rb;
    466   1.1   simonb 
    467   1.1   simonb 
    468   1.1   simonb 			/* One of the special opcodes.... */
    469   1.1   simonb 			switch (instr.i_x.i_xo) {
    470   1.1   simonb 			case	OPC63_FCMPU:
    471   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fcmpu);
    472   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FCMPU\n"));
    473   1.1   simonb 				rt >>= 2;
    474   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, ra);
    475   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rb);
    476   1.1   simonb 				fpu_compare(fe, 0);
    477   1.1   simonb 				/* Make sure we do the condition regs. */
    478   1.1   simonb 				cond = 0;
    479   1.1   simonb 				/* N.B.: i_rs is already left shifted by two. */
    480   1.1   simonb 				bf = instr.i_x.i_rs & 0xfc;
    481   1.1   simonb 				setcr = 1;
    482   1.1   simonb 				break;
    483   1.1   simonb 
    484   1.1   simonb 			case	OPC63_FRSP:
    485   1.1   simonb 				/*
    486   1.1   simonb 				 * Convert to single:
    487   1.1   simonb 				 *
    488   1.1   simonb 				 * PowerPC uses this to round a double
    489   1.1   simonb 				 * precision value to single precision,
    490   1.1   simonb 				 * but values in registers are always
    491   1.1   simonb 				 * stored in double precision format.
    492   1.1   simonb 				 */
    493   1.4  thorpej 				FPU_EMU_EVCNT_INCR(frsp);
    494   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FRSP\n"));
    495   1.1   simonb 				fpu_explode(fe, fp = &fe->fe_f1, FTYPE_DBL, rb);
    496   1.1   simonb 				fpu_implode(fe, fp, FTYPE_SNG,
    497   1.1   simonb 					(u_int *)&fs->fpreg[rt]);
    498   1.1   simonb 				fpu_explode(fe, fp = &fe->fe_f1, FTYPE_SNG, rt);
    499   1.1   simonb 				type = FTYPE_DBL;
    500   1.1   simonb 				break;
    501   1.1   simonb 			case	OPC63_FCTIW:
    502   1.1   simonb 			case	OPC63_FCTIWZ:
    503   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fctiw);
    504   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FCTIW\n"));
    505   1.1   simonb 				fpu_explode(fe, fp = &fe->fe_f1, type, rb);
    506   1.1   simonb 				type = FTYPE_INT;
    507   1.1   simonb 				break;
    508   1.1   simonb 			case	OPC63_FCMPO:
    509   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fcmpo);
    510   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FCMPO\n"));
    511   1.1   simonb 				rt >>= 2;
    512   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, ra);
    513   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rb);
    514   1.1   simonb 				fpu_compare(fe, 1);
    515   1.1   simonb 				/* Make sure we do the condition regs. */
    516   1.1   simonb 				cond = 0;
    517   1.1   simonb 				/* N.B.: i_rs is already left shifted by two. */
    518   1.1   simonb 				bf = instr.i_x.i_rs & 0xfc;
    519   1.1   simonb 				setcr = 1;
    520   1.1   simonb 				break;
    521   1.1   simonb 			case	OPC63_MTFSB1:
    522   1.4  thorpej 				FPU_EMU_EVCNT_INCR(mtfsb1);
    523   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: MTFSB1\n"));
    524  1.39      rin 				mtfsb1 = 1;
    525  1.39      rin 				fe->fe_cx = (1 << (31 - rt)) &
    526  1.39      rin 				    ~(FPSCR_FEX | FPSCR_VX);
    527   1.1   simonb 				break;
    528   1.1   simonb 			case	OPC63_FNEG:
    529   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fnegabs);
    530   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FNEGABS\n"));
    531   1.3      wiz 				memcpy(&fs->fpreg[rt], &fs->fpreg[rb],
    532   1.1   simonb 					sizeof(double));
    533   1.1   simonb 				a = (int *)&fs->fpreg[rt];
    534   1.1   simonb 				*a ^= (1 << 31);
    535   1.1   simonb 				break;
    536   1.1   simonb 			case	OPC63_MCRFS:
    537   1.4  thorpej 				FPU_EMU_EVCNT_INCR(mcrfs);
    538   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: MCRFS\n"));
    539   1.1   simonb 				cond = 0;
    540   1.1   simonb 				rt &= 0x1c;
    541   1.1   simonb 				ra &= 0x1c;
    542   1.1   simonb 				/* Extract the bits we want */
    543  1.41      rin 				bits = (fe->fe_fpscr >> (28 - ra)) & 0xf;
    544   1.1   simonb 				/* Clear the bits we copied. */
    545  1.41      rin 				mask = (0xf << (28 - ra)) & MCRFS_MASK;
    546  1.41      rin 				fe->fe_fpscr &= ~mask;
    547   1.1   simonb 				/* Now shove them in the right part of cr */
    548  1.15     matt 				tf->tf_cr &= ~(0xf << (28 - rt));
    549  1.41      rin 				tf->tf_cr |= bits << (28 - rt);
    550   1.1   simonb 				break;
    551   1.1   simonb 			case	OPC63_MTFSB0:
    552   1.4  thorpej 				FPU_EMU_EVCNT_INCR(mtfsb0);
    553   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: MTFSB0\n"));
    554  1.39      rin 				fe->fe_fpscr &= ~(1 << (31 - rt)) |
    555  1.39      rin 				    (FPSCR_FEX | FPSCR_VX);
    556   1.1   simonb 				break;
    557   1.1   simonb 			case	OPC63_FMR:
    558   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fmr);
    559   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FMR\n"));
    560   1.3      wiz 				memcpy(&fs->fpreg[rt], &fs->fpreg[rb],
    561   1.1   simonb 					sizeof(double));
    562   1.1   simonb 				break;
    563   1.1   simonb 			case	OPC63_MTFSFI:
    564   1.4  thorpej 				FPU_EMU_EVCNT_INCR(mtfsfi);
    565   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: MTFSFI\n"));
    566   1.1   simonb 				rb >>= 1;
    567   1.1   simonb 				rt &= 0x1c; /* Already left-shifted 4 */
    568  1.40      rin 				bits = rb << (28 - rt);
    569  1.40      rin 				mask = 0xf << (28 - rt);
    570  1.40      rin 				fe->fe_fpscr = (fe->fe_fpscr & ~mask) | bits;
    571   1.1   simonb 				break;
    572   1.1   simonb 			case	OPC63_FNABS:
    573   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fnabs);
    574   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FABS\n"));
    575   1.3      wiz 				memcpy(&fs->fpreg[rt], &fs->fpreg[rb],
    576   1.1   simonb 					sizeof(double));
    577   1.1   simonb 				a = (int *)&fs->fpreg[rt];
    578   1.1   simonb 				*a |= (1 << 31);
    579   1.1   simonb 				break;
    580   1.1   simonb 			case	OPC63_FABS:
    581   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fabs);
    582   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FABS\n"));
    583   1.3      wiz 				memcpy(&fs->fpreg[rt], &fs->fpreg[rb],
    584   1.1   simonb 					sizeof(double));
    585   1.1   simonb 				a = (int *)&fs->fpreg[rt];
    586   1.1   simonb 				*a &= ~(1 << 31);
    587   1.1   simonb 				break;
    588   1.1   simonb 			case	OPC63_MFFS:
    589   1.4  thorpej 				FPU_EMU_EVCNT_INCR(mffs);
    590   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: MFFS\n"));
    591   1.3      wiz 				memcpy(&fs->fpreg[rt], &fs->fpscr,
    592   1.1   simonb 					sizeof(fs->fpscr));
    593   1.1   simonb 				break;
    594   1.1   simonb 			case	OPC63_MTFSF:
    595   1.4  thorpej 				FPU_EMU_EVCNT_INCR(mtfsf);
    596   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: MTFSF\n"));
    597  1.40      rin 				if ((rt = instr.i_xfl.i_flm) == -1) {
    598   1.1   simonb 					mask = -1;
    599  1.40      rin 				} else {
    600   1.1   simonb 					mask = 0;
    601   1.1   simonb 					/* Convert 1 bit -> 4 bits */
    602  1.40      rin 					for (i = 0; i < 8; i++)
    603  1.40      rin 						if (rt & (1 << i))
    604  1.40      rin 							mask |=
    605  1.40      rin 							    (0xf << (4 * i));
    606   1.1   simonb 				}
    607  1.28      rin 				a = (int *)&fs->fpreg[rb];
    608  1.40      rin 				bits = a[1] & mask;
    609  1.40      rin 				fe->fe_fpscr = (fe->fe_fpscr & ~mask) | bits;
    610   1.1   simonb 				break;
    611   1.1   simonb 			case	OPC63_FCTID:
    612   1.1   simonb 			case	OPC63_FCTIDZ:
    613   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fctid);
    614   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FCTID\n"));
    615   1.1   simonb 				fpu_explode(fe, fp = &fe->fe_f1, type, rb);
    616   1.1   simonb 				type = FTYPE_LNG;
    617   1.1   simonb 				break;
    618   1.1   simonb 			case	OPC63_FCFID:
    619   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fcfid);
    620   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FCFID\n"));
    621   1.1   simonb 				type = FTYPE_LNG;
    622   1.1   simonb 				fpu_explode(fe, fp = &fe->fe_f1, type, rb);
    623   1.1   simonb 				type = FTYPE_DBL;
    624   1.1   simonb 				break;
    625   1.1   simonb 			default:
    626   1.1   simonb 				return (NOTFPU);
    627   1.1   simonb 				break;
    628   1.1   simonb 			}
    629   1.1   simonb 		} else {
    630   1.1   simonb 			/* Format A */
    631   1.1   simonb 			rt = instr.i_a.i_frt;
    632   1.1   simonb 			ra = instr.i_a.i_fra;
    633   1.1   simonb 			rb = instr.i_a.i_frb;
    634   1.1   simonb 			rc = instr.i_a.i_frc;
    635   1.1   simonb 
    636  1.19      rin 			/*
    637  1.19      rin 			 * All arithmetic operations work on registers, which
    638  1.19      rin 			 * are stored as doubles.
    639  1.19      rin 			 */
    640  1.19      rin 			type = FTYPE_DBL;
    641   1.1   simonb 			switch ((unsigned int)instr.i_a.i_xo) {
    642   1.1   simonb 			case	OPC59_FDIVS:
    643   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fdiv);
    644   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FDIV\n"));
    645   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, ra);
    646   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rb);
    647   1.1   simonb 				fp = fpu_div(fe);
    648   1.1   simonb 				break;
    649   1.1   simonb 			case	OPC59_FSUBS:
    650   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fsub);
    651   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FSUB\n"));
    652   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, ra);
    653   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rb);
    654   1.1   simonb 				fp = fpu_sub(fe);
    655   1.1   simonb 				break;
    656   1.1   simonb 			case	OPC59_FADDS:
    657   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fadd);
    658   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FADD\n"));
    659   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, ra);
    660   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rb);
    661   1.1   simonb 				fp = fpu_add(fe);
    662   1.1   simonb 				break;
    663   1.1   simonb 			case	OPC59_FSQRTS:
    664   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fsqrt);
    665   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FSQRT\n"));
    666   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, rb);
    667   1.1   simonb 				fp = fpu_sqrt(fe);
    668   1.1   simonb 				break;
    669   1.1   simonb 			case	OPC63M_FSEL:
    670   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fsel);
    671   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FSEL\n"));
    672   1.1   simonb 				a = (int *)&fe->fe_fpstate->fpreg[ra];
    673   1.1   simonb 				if ((*a & 0x80000000) && (*a & 0x7fffffff))
    674   1.1   simonb 					/* fra < 0 */
    675   1.1   simonb 					rc = rb;
    676   1.1   simonb 				DPRINTF(FPE_INSN, ("f%d => f%d\n", rc, rt));
    677   1.3      wiz 				memcpy(&fs->fpreg[rt], &fs->fpreg[rc],
    678   1.1   simonb 					sizeof(double));
    679   1.1   simonb 				break;
    680   1.1   simonb 			case	OPC59_FRES:
    681   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fpres);
    682   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FPRES\n"));
    683   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, rb);
    684   1.1   simonb 				fp = fpu_sqrt(fe);
    685   1.1   simonb 				/* now we've gotta overwrite the dest reg */
    686   1.1   simonb 				*((int *)&fe->fe_fpstate->fpreg[rt]) = 1;
    687   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, FTYPE_INT, rt);
    688   1.1   simonb 				fpu_div(fe);
    689   1.1   simonb 				break;
    690   1.1   simonb 			case	OPC59_FMULS:
    691   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fmul);
    692   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FMUL\n"));
    693   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, ra);
    694   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rc);
    695   1.1   simonb 				fp = fpu_mul(fe);
    696   1.1   simonb 				break;
    697   1.1   simonb 			case	OPC63M_FRSQRTE:
    698   1.1   simonb 				/* Reciprocal sqrt() estimate */
    699   1.4  thorpej 				FPU_EMU_EVCNT_INCR(frsqrte);
    700   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FRSQRTE\n"));
    701   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, rb);
    702  1.12      scw 				fp = fpu_sqrt(fe);
    703   1.1   simonb 				fe->fe_f2 = *fp;
    704   1.1   simonb 				/* now we've gotta overwrite the dest reg */
    705   1.1   simonb 				*((int *)&fe->fe_fpstate->fpreg[rt]) = 1;
    706   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, FTYPE_INT, rt);
    707   1.1   simonb 				fpu_div(fe);
    708   1.1   simonb 				break;
    709   1.1   simonb 			case	OPC59_FMSUBS:
    710   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fmulsub);
    711   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FMULSUB\n"));
    712   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, ra);
    713   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rc);
    714   1.1   simonb 				fp = fpu_mul(fe);
    715   1.1   simonb 				fe->fe_f1 = *fp;
    716   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rb);
    717   1.1   simonb 				fp = fpu_sub(fe);
    718   1.1   simonb 				break;
    719   1.1   simonb 			case	OPC59_FMADDS:
    720   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fmuladd);
    721   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FMULADD\n"));
    722   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, ra);
    723   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rc);
    724   1.1   simonb 				fp = fpu_mul(fe);
    725   1.1   simonb 				fe->fe_f1 = *fp;
    726   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rb);
    727   1.1   simonb 				fp = fpu_add(fe);
    728   1.1   simonb 				break;
    729   1.1   simonb 			case	OPC59_FNMSUBS:
    730   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fnmsub);
    731   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FNMSUB\n"));
    732   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, ra);
    733   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rc);
    734   1.1   simonb 				fp = fpu_mul(fe);
    735   1.1   simonb 				fe->fe_f1 = *fp;
    736   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rb);
    737   1.1   simonb 				fp = fpu_sub(fe);
    738   1.1   simonb 				/* Negate */
    739   1.1   simonb 				fp->fp_sign ^= 1;
    740   1.1   simonb 				break;
    741   1.1   simonb 			case	OPC59_FNMADDS:
    742   1.4  thorpej 				FPU_EMU_EVCNT_INCR(fnmadd);
    743   1.1   simonb 				DPRINTF(FPE_INSN, ("fpu_execute: FNMADD\n"));
    744   1.1   simonb 				fpu_explode(fe, &fe->fe_f1, type, ra);
    745   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rc);
    746   1.1   simonb 				fp = fpu_mul(fe);
    747   1.1   simonb 				fe->fe_f1 = *fp;
    748   1.1   simonb 				fpu_explode(fe, &fe->fe_f2, type, rb);
    749   1.1   simonb 				fp = fpu_add(fe);
    750   1.1   simonb 				/* Negate */
    751   1.1   simonb 				fp->fp_sign ^= 1;
    752   1.1   simonb 				break;
    753   1.1   simonb 			default:
    754   1.1   simonb 				return (NOTFPU);
    755   1.1   simonb 				break;
    756   1.1   simonb 			}
    757  1.19      rin 
    758  1.19      rin 			/* If the instruction was single precision, round */
    759  1.19      rin 			if (!(instr.i_any.i_opcd & 0x4)) {
    760  1.19      rin 				fpu_implode(fe, fp, FTYPE_SNG,
    761  1.19      rin 					(u_int *)&fs->fpreg[rt]);
    762  1.19      rin 				fpu_explode(fe, fp = &fe->fe_f1, FTYPE_SNG, rt);
    763  1.19      rin 			}
    764   1.1   simonb 		}
    765   1.1   simonb 	} else {
    766   1.1   simonb 		return (NOTFPU);
    767   1.1   simonb 	}
    768   1.1   simonb 
    769   1.1   simonb 	/*
    770   1.1   simonb 	 * ALU operation is complete.  Collapse the result and then check
    771   1.1   simonb 	 * for exceptions.  If we got any, and they are enabled, do not
    772   1.1   simonb 	 * alter the destination register, just stop with an exception.
    773   1.1   simonb 	 * Otherwise set new current exceptions and accrue.
    774   1.1   simonb 	 */
    775   1.1   simonb 	if (fp)
    776   1.1   simonb 		fpu_implode(fe, fp, type, (u_int *)&fs->fpreg[rt]);
    777   1.1   simonb 	cx = fe->fe_cx;
    778  1.32      rin 	fsr = fe->fe_fpscr & ~(FPSCR_FEX|FPSCR_VX);
    779   1.1   simonb 	if (cx != 0) {
    780  1.39      rin 		if (mtfsb1 == 0 && (cx & FPSCR_FPRF) != 0) {
    781   1.1   simonb 			/* Need to replace CC */
    782   1.1   simonb 			fsr &= ~FPSCR_FPRF;
    783   1.1   simonb 		}
    784   1.1   simonb 		fsr |= cx;
    785   1.1   simonb 		DPRINTF(FPE_INSN, ("fpu_execute: cx %x, fsr %x\n", cx, fsr));
    786   1.1   simonb 	}
    787  1.32      rin 	if (fsr & FPSR_INV)
    788  1.32      rin 		fsr |= FPSCR_VX;
    789  1.38      rin 	mask = (fsr & FPSR_EX) << (25 - 3);
    790  1.38      rin 	if (fsr & mask)
    791  1.38      rin 		fsr |= FPSCR_FEX;
    792  1.40      rin 	if ((fsr ^ fe->fe_fpscr) & FPSR_EX_MSK)
    793  1.32      rin 		fsr |= FPSCR_FX;
    794   1.1   simonb 
    795   1.1   simonb 	if (cond) {
    796   1.1   simonb 		cond = fsr & 0xf0000000;
    797   1.1   simonb 		/* Isolate condition codes */
    798   1.1   simonb 		cond >>= 28;
    799   1.1   simonb 		/* Move fpu condition codes to cr[1] */
    800  1.34      rin 		tf->tf_cr &= ~(0x0f000000);
    801  1.15     matt 		tf->tf_cr |= (cond<<24);
    802   1.1   simonb 		DPRINTF(FPE_INSN, ("fpu_execute: cr[1] <= %x\n", cond));
    803   1.1   simonb 	}
    804   1.1   simonb 
    805   1.1   simonb 	if (setcr) {
    806   1.1   simonb 		cond = fsr & FPSCR_FPCC;
    807   1.1   simonb 		/* Isolate condition codes */
    808   1.1   simonb 		cond <<= 16;
    809  1.35      rin 		/* Move fpu condition codes to cr[bf/4] */
    810  1.15     matt 		tf->tf_cr &= ~(0xf0000000>>bf);
    811  1.15     matt 		tf->tf_cr |= (cond>>bf);
    812  1.15     matt 		DPRINTF(FPE_INSN, ("fpu_execute: cr[%d] (cr=%x) <= %x\n", bf/4, tf->tf_cr, cond));
    813   1.1   simonb 	}
    814   1.1   simonb 
    815   1.1   simonb 	((int *)&fs->fpscr)[1] = fsr;
    816   1.1   simonb 	if (fsr & FPSCR_FEX)
    817   1.1   simonb 		return(FPE);
    818   1.1   simonb 	return (0);	/* success */
    819   1.1   simonb }
    820